Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Problem
I would like to be able to do something like that in Android XML code:

<string name="title">@string/app_name test</string>
<string name="title2">@string/app_name @string/version_name</string>

Regarding first line of code compiler shows this error

No resource found that matches the given name (at 'title' with value '@string/app_name test')

and regarding second line of code compiler shows this error

No resource found that matches the given name (at 'title2' with value '@string/app_name @string/version_name')

Question
Does anybody know how to concatenate multiple strings in Android XML?

Rationale
It is bad practice to duplicate variable values in many places of code (in this case XML).

share|improve this question
    
Did you file a bug in the Android bug tracker or somewhere else for the case? –  JJD Jun 23 '13 at 18:59
    
This feature would be a great help to maintain your code. –  Kumar Bibek Oct 9 '13 at 8:56

2 Answers 2

I've tried to do a similar maneuver myself but I was told this is not doable in Android.

The interesting thing is that you get an error message that indicates that it indeed is possible but due to errors in resource matching it's not possible right now. (Are you sure you have defined the "app_name" and "version_name" strings before the "title" and "title2" strings?)

You can however do something like:

<string name="title">%1$s test</string>
<string name="title2">%1$s %2$s</string>

<string name="app_name">AppName</string>
<string name="version_name">1.2</string>

And then from Java code do something like:

Resources res = getResources();
String appName = res.getString(R.string.app_name);
String versionName = res.getString(R.string.version_name);

String title = res.getString(R.string.title, appName);
String title2 = res.getString(R.string.title2, appName, versionName);

More about formatting strings in Android.

Hope this helps.

share|improve this answer
    
That is something. :-) Sadly you can't access fields formated this way from XML, e.g. @string/title2 gives you %1$s %2$s. –  Andrzej Duś Apr 23 '11 at 15:19
    
Yes, that is indeed the single largest drawback of this solution: it needs Java code to work. –  dbm Apr 23 '11 at 15:32
1  
What's more, this doesn't work too: <string name="title">test @string/app_name</string> (but doesn't throw compile error, just stays unparsed). Seems that you are right: it's not doable what I'm asking for. –  Andrzej Duś Apr 23 '11 at 15:34
    
It's quite odd though. You can reference a dimension from another one. <dimen name="icon_width">@dimen/common_width</dimen> is fully valid if you previously have defined <dimen name="common_width">10dp</dimen> –  dbm Apr 23 '11 at 15:43
4  
For clarity. That works too: <string name="title">@string/app_name</string>. –  Andrzej Duś Apr 23 '11 at 16:00

You could use your own logic that resolves the nested strings recursively.

I answered a similar question here. For your convenience, that's how I solved this issue:

/**
 * Regex that matches a resource string such as <code>@string/a-b_c1</code>.
 */
private static final String REGEX_RESOURCE_STRING = "@string/([A-Za-z0-9-_]*)";

/** Name of the resource type "string" as in <code>@string/...</code> */
private static final String DEF_TYPE_STRING = "string";

/**
 * Recursively replaces resources such as <code>@string/abc</code> with
 * their localized values from the app's resource strings (e.g.
 * <code>strings.xml</code>) within a <code>source</code> string.
 * 
 * Also works recursively, that is, when a resource contains another
 * resource that contains another resource, etc.
 * 
 * @param source
 * @return <code>source</code> with replaced resources (if they exist)
 */
public static String replaceResourceStrings(Context context, String source) {
    // Recursively resolve strings
    Pattern p = Pattern.compile(REGEX_RESOURCE_STRING);
    Matcher m = p.matcher(source);
    StringBuffer sb = new StringBuffer();
    while (m.find()) {
        String stringFromResources = getStringByName(context, m.group(1));
        if (stringFromResources == null) {
            Log.w(Constants.LOG,
                    "No String resource found for ID \"" + m.group(1)
                            + "\" while inserting resources");
            /*
             * No need to try to load from defaults, android is trying that
             * for us. If we're here, the resource does not exist. Just
             * return its ID.
             */
            stringFromResources = m.group(1);
        }
        m.appendReplacement(sb, // Recurse
                replaceResourceStrings(context, stringFromResources));
    }
    m.appendTail(sb);
    return sb.toString();
}

/**
 * Returns the string value of a string resource (e.g. defined in
 * <code>values.xml</code>).
 * 
 * @param name
 * @return the value of the string resource or <code>null</code> if no
 *         resource found for id
 */
public static String getStringByName(Context context, String name) {
    int resourceId = getResourceId(context, DEF_TYPE_STRING, name);
    if (resourceId != 0) {
        return context.getString(resourceId);
    } else {
        return null;
    }
}

/**
 * Finds the numeric id of a string resource (e.g. defined in
 * <code>values.xml</code>).
 * 
 * @param defType
 *            Optional default resource type to find, if "type/" is not
 *            included in the name. Can be null to require an explicit type.
 * 
 * @param name
 *            the name of the desired resource
 * @return the associated resource identifier. Returns 0 if no such resource
 *         was found. (0 is not a valid resource ID.)
 */
private static int getResourceId(Context context, String defType,
        String name) {
    return context.getResources().getIdentifier(name, defType,
            context.getPackageName());
}

From an Activity, for example, call it like so

replaceResourceStrings(this, getString(R.string.title));
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.